• Title/Summary/Keyword: computer based training

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Effective of Collaborative Reflection based on SNS in Teacher Training (교사연수에서 SNS를 이용한 협력성찰활동의 효과)

  • Kim, Sanghong;Han, Seonkwan
    • Journal of The Korean Association of Information Education
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    • v.19 no.3
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    • pp.261-270
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    • 2015
  • In this paper, a strategy of cooperation activities was conducted to analyze on the impact of what effect appears in teacher training. We classified with satisfaction, effectiveness and academic achievement as effects of teacher training. We were divided into three groups that are cooperative-reflection activity group using the SNS, self-reflection activity group and general training group. Depending on the type of reflection activity, we have one-way ANOVA analysis for the effectiveness of teacher training. By the results of the analysis, we found to have a positive impact that cooperative reflection activity group were more an academic achievement, satisfaction and effectiveness of training. Accordingly, we have found the SNS-based collaborative reflection activity is very effective in teacher training.

A Feature Selection Technique based on Distributional Differences

  • Kim, Sung-Dong
    • Journal of Information Processing Systems
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    • v.2 no.1
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    • pp.23-27
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    • 2006
  • This paper presents a feature selection technique based on distributional differences for efficient machine learning. Initial training data consists of data including many features and a target value. We classified them into positive and negative data based on the target value. We then divided the range of the feature values into 10 intervals and calculated the distribution of the intervals in each positive and negative data. Then, we selected the features and the intervals of the features for which the distributional differences are over a certain threshold. Using the selected intervals and features, we could obtain the reduced training data. In the experiments, we will show that the reduced training data can reduce the training time of the neural network by about 40%, and we can obtain more profit on simulated stock trading using the trained functions as well.

Education Method for Programming through Physical Computing based on Analog Signaling of Arduino (아두이노 아날로그 신호 기반 피지컬 컴퓨팅을 통한 프로그래밍 교육 방법)

  • Hur, Kyeong;Sohn, Won-Sung
    • Journal of Korea Multimedia Society
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    • v.22 no.12
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    • pp.1481-1490
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    • 2019
  • Arduino makes it easy to connect objects and computers. As a result, programming learning using physical computing has been proposed as an effective alternative to SW training for beginners. In this paper, we propose an Arduino-based physical computing education method that can be applied to basic programming subjects. To this end, we propose a basic programming training method based on Arduino analog signals. Currently, physical computing courses focus on digital control when connecting input sensors and output devices in Arduino. However, the contents of programming education using analog signals of Arduino boards are insufficient. In this paper, we proposed and tested the teaching method used for programming education using low-cost materials used for Arduino analog signal-based computing.

The classified method for overlapping data

  • Kruatrachue, Boontee;Warunsin, Kulwarun;Siriboon, Kritawan
    • 제어로봇시스템학회:학술대회논문집
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    • 2004.08a
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    • pp.2037-2040
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    • 2004
  • In this paper we introduce a new prototype based classifiers for overlapping data, where training pattern can be overlap on the feature space. The proposed classifier is based on the prototype from neural network classifier (NNC)[1] for overlap data. The method automatically chooses the initial center and two radiuses for each class. The center is used as a mean representative of training data for each class. The unclassified pattern is classified by measure distance from the class center. If the distance is in the lower (shorter radius) the unknown pattern has the high percentage of being in this class. If the distance is between the lower and upper (further radius), the pattern has the probability of being in this class or others. But if the distance is outside the upper, the pattern is not in this class. We borrow the words upper and lower from the rough set to represent the region of certainty [3]. The training algorithm to find number of cluster and their parameters (center, lower, upper) is presented. The clustering result is tested using patterns from Thai handwritten letter and the clustering result is very similar to human eyes clustering.

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Development of a Competency Curriculum of Computer Aided Mechanical Department based on the National Occupational Standards (국가직업능력표준을 활용한 컴퓨터 응용기계설계과용 능력중심 교육과정 개발)

  • Ryu Hyeong-Ryong;Pyoun Young-Sik;Gu Ja-Gil
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.6 no.1
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    • pp.17-23
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    • 2005
  • According to the trend that knowledge information and technology become resource of international competitiveness in industrial development, some countries of world are improving national human resource development system through National Occupational Standards, which is inseparable link system of work-education and training-qualification. National Occupational Standards have been developed fur over all industries by Human Resource Development Korea since 2002. Purpose of this study is to develop a competency based curriculum of computer mechanical design department in junior college or polytechnic college by systematic curriculum and instructional development model based on Korean National Occupational Standards. A guide line how to develop education and training program is presented also.

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A Fuzzy Rule-based System for Automatically Generating Customized Training Scenarios in Cyber Security

  • Nam, Su Man
    • Journal of the Korea Society of Computer and Information
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    • v.25 no.8
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    • pp.39-45
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    • 2020
  • Despite the increasing interest in cyber security in recent years, the emergence of new technologies has led to a shortage of professional personnel to efficiently perform the cyber security. Although various methods such as cyber rage are being used to cultivate cyber security experts, there are problems of limitation of virtual training system, scenario-based practice content development and operation, unit content-oriented development, and lack of consideration of learner level. In this paper, we develop a fuzzy rule-based user-customized training scenario automatic generation system for improving user's ability to respond to infringement. The proposed system creates and provides scenarios based on advanced persistent threats according to fuzzy rules. Thus, the proposed system can improve the trainee's ability to respond to the bed through the generated scenario.

Personal Training Suggestion System based on Hybrid App (하이브리드 앱 기반의 개인 트레이닝 추천 시스템)

  • Kye, Min-Seok;Jang, Hyeon-Suk;Jung, Hoe-Kyung
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.18 no.6
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    • pp.1475-1480
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    • 2014
  • Wellness is IT fused with the user manage and maintain the health of a service can help you. If you are using an existing Fitness Center to yourself by choosing appliances that fit with the risk of injury in order to learn how the efficient movement had existed for a long time was needed. To resolve, use the personal training but more expensive cost of people's problems, and shown again in the habit of exercising alone will have difficulty. This paper provides a variety of smart phones based on a hybrid app with compatibility with the platform and personalized training market system. Users of the Fitness Center is built into smart phones in the history of their movement sensors or transmits to the Web by typing directly. This is based on exercise programs tailored to users via the training market. Personal training marketplace has a variety of users, check the history of this movement he can recommend an exercise program for themselves can be applied by selecting the. This provides users with the right exercise program can do long-term exercise habits can be proactive and goal setting.

Development and application of Scenario-based Admission Management VR contents for nursing students

  • Kim, Yu-Jeong
    • Journal of the Korea Society of Computer and Information
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    • v.26 no.1
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    • pp.209-216
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    • 2021
  • In this paper, I developed a scenario-based admission management virtual reality (SAM VR) content for practical training for nursing students and verified the effectiveness. The SAM VR contents used in the study was developed by the researcher using Gear VR and smartphone according to the standard practical procedure suggested by the Korea Acreditation Board of Nursing Education and Evaluation. In the 30 experimental groups who received practical training using SAM VR contents, learning flow, learning confidence, and learning satisfaction increased statistically significantly after the practical training (p<.001). In the control group, who received practical training in the traditional way, learning confidence increased after the practical training (p<.005), but there was no change in learning flow and learning satisfaction (p>.005). It was verified that the SAM VR contents are effective practical education contents for nursing students' learning flow, learning confidence and learning satisfaction.

Classification Accuracy by Deviation-based Classification Method with the Number of Training Documents (학습문서의 개수에 따른 편차기반 분류방법의 분류 정확도)

  • Lee, Yong-Bae
    • Journal of Digital Convergence
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    • v.12 no.6
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    • pp.325-332
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    • 2014
  • It is generally accepted that classification accuracy is affected by the number of learning documents, but there are few studies that show how this influences automatic text classification. This study is focused on evaluating the deviation-based classification model which is developed recently for genre-based classification and comparing it to other classification algorithms with the changing number of training documents. Experiment results show that the deviation-based classification model performs with a superior accuracy of 0.8 from categorizing 7 genres with only 21 training documents. This exceeds the accuracy of Bayesian and SVM. The Deviation-based classification model obtains strong feature selection capability even with small number of training documents because it learns subject information within genre while other methods use different learning process.

A Study on Unsupervised Learning Method of RAM-based Neural Net (RAM 기반 신경망의 비지도 학습에 관한 연구)

  • Park, Sang-Moo;Kim, Seong-Jin;Lee, Dong-Hyung;Lee, Soo-Dong;Ock, Cheol-Young
    • Journal of the Korea Society of Computer and Information
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    • v.16 no.1
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    • pp.31-38
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    • 2011
  • A RAM-based Neural Net is a weightless neural network based on binary neural network. 3-D neural network using this paper is binary neural network with multiful information bits and store counts of training. Recognition method by MRD technique is based on the supervised learning. Therefore neural network by itself can not distinguish between the categories and well-separated categories of training data can achieve only through the performance. In this paper, unsupervised learning algorithm is proposed which is trained existing 3-D neural network without distinction of data, to distinguish between categories depending on the only input training patterns. The training data for proposed unsupervised learning provided by the NIST handwritten digits of MNIST which is consist of 0 to 9 multi-pattern, a randomly materials are used as training patterns. Through experiments, neural network is to determine the number of discriminator which each have an idea of the handwritten digits that can be interpreted.